Không mất tính tổng quát, giả sử \(2\ge a\ge b\ge c\ge1\)

Khi đó dễ thấy dấu = sẽ đạt được tại biên, tức a=2, c=1 nên ta sẽ dồn các biến ra biên

Ta có: \(\left(\dfrac{a}{b}-1\right)\left(\dfrac{b}{c}-1\right)\ge0\Leftrightarrow\dfrac{a}{b}+\dfrac{b}{c}\le\dfrac{a}{c}+1\)

\(\left(\dfrac{b}{a}-1\right)\left(\dfrac{c}{b}-1\right)\ge0\Leftrightarrow\dfrac{b}{a}+\dfrac{c}{b}\le\dfrac{c}{a}+1\)

Do đó \(VT\le2\left(\dfrac{a}{c}+\dfrac{c}{a}\right)+2\) nên chỉ cần chứng minh \(\dfrac{a}{c}+\dfrac{c}{a}\le\dfrac{5}{2}\)(*) hay \(\dfrac{\left(a-2c\right)\left(2a-c\right)}{2ac}\le0\) ( luôn đúng do \(c\le a\le2c\) )

Vậy ta có đpcm. Dấu = xảy ra khi a=2, c=1, b=1 hoặc a=2, c=1, b=2 và các hoán vị tương ứng.

\(\dfrac{b}{1+b}+\dfrac{c}{1+c}+\dfrac{d}{1+d}\le1-\dfrac{a}{1+a}=\dfrac{1}{1+a}\)

\(\Rightarrow\dfrac{1}{1+a}\ge\dfrac{b}{1+b}+\dfrac{c}{1+c}+\dfrac{d}{1+d}\ge3\dfrac{\sqrt[3]{bcd}}{\sqrt[3]{\left(1+b\right)\left(1+c\right)\left(1+d\right)}}\)

Chứng minh tương tự ta có:

\(\dfrac{1}{1+b}\ge3\dfrac{\sqrt[3]{acd}}{\sqrt[3]{\left(1+a\right)\left(1+c\right)\left(1+d\right)}}\)

\(\dfrac{1}{1+c}\ge3\dfrac{\sqrt[3]{abd}}{\sqrt[3]{\left(1+a\right)\left(1+b\right)\left(1+d\right)}}\)

\(\dfrac{1}{1+d}\ge3\dfrac{\sqrt[3]{abc}}{\sqrt[3]{\left(1+a\right)\left(1+b\right)\left(1+c\right)}}\)

Nhân vế với vế của các BĐT trên ta được:

\(\dfrac{1}{\left(1+a\right)\left(1+b\right)\left(1+c\right)\left(1+d\right)}\ge81\dfrac{abcd}{\left(1+a\right)\left(1+b\right)\left(1+c\right)\left(1+d\right)}\)

\(\Rightarrow81abcd\le1\Rightarrow abcd\le\dfrac{1}{81}\)

Dấu "=" xảy ra khi \(a=b=c=d=\dfrac{1}{3}\)

b) Ta có:

\(\dfrac{1^2}{a}+\dfrac{1^2}{b}+\dfrac{1^2}{c}+\dfrac{1^2}{d}\ge\dfrac{\left(1+1+1+1\right)^2}{a+b+c+d}=\dfrac{16}{a+b+c+d}\)

Dấu = xảy rakhi a=b=c=d

CM : bn tự chứng minh

Áp dụng:

Ta có:

\(\dfrac{1}{a}+\dfrac{1}{b}+\dfrac{4}{c}+\dfrac{16}{d}=\dfrac{1^2}{a}+\dfrac{1^2}{b}+\dfrac{2^2}{c}+\dfrac{4^2}{d}\ge\dfrac{\left(1+1+2+4\right)^2}{a+b+c+d}=\dfrac{64}{a+b+c+d}\)

Dấu = xảy ra khi \(a=b=\dfrac{c}{2}=\dfrac{d}{4}\)

Từ giả thiết, ta có:

\(\dfrac{1}{1+a}\ge1-\dfrac{1}{1+b}+1-\dfrac{1}{1+c}+1-\dfrac{1}{1+d}=\dfrac{b}{1+b}+\dfrac{c}{c+1}+\dfrac{d}{d+1}\ge3\sqrt[3]{\dfrac{b.c.d}{\left(1+b\right)\left(1+c\right)\left(1+d\right)}}\)

Tương tự:

\(\dfrac{1}{1+b}\ge3\sqrt[3]{\dfrac{cda}{\left(1+a\right)\left(1+c\right)\left(1+d\right)}}\)

\(\dfrac{1}{1+c}\ge3\sqrt[3]{\dfrac{abd}{\left(1+a\right)\left(1+b\right)\left(1+d\right)}}\)

\(\dfrac{1}{1+d}\ge3\sqrt[3]{\dfrac{abc}{\left(1+a\right)\left(1+b\right)\left(1+c\right)}}\)

Nhân vế theo vế 4 BĐT vừa chứng minh rồi rút gọn ta được:

\(abcd\le\dfrac{1}{81}\left(đpcm\right)\)

Mỗi vế trừ đi 4

\(\frac{1}{a^2+b^2+2}+\frac{1}{c^2+b^2+2}+\frac{1}{a^2+c^2+2}\le\frac{3}{4}\)

\(\Leftrightarrow\frac{a^2+b^2}{a^2+b^2+2}+\frac{b^2+c^2}{b^2+c^2+2}+\frac{c^2+a^2}{c^2+a^2+2}\ge\frac{3}{2}\)

Áp dụng BĐT Cauchy-Schwarz ta có:

\(VT\ge\frac{\left(\sqrt{a^2+b^2}+\sqrt{b^2+c^2}+\sqrt{c^2+a^2}\right)^2}{2\left(a^2+b^2+c^2\right)+6}\)

\(\ge\frac{\sqrt{3\left(a^2b^2+b^2c^2+c^2a^2\right)}+2\left(a^2+b^2+c^2\right)}{a^2+b^2+c^2}\)

\(\ge\frac{2\left(a^2+b^2+c^2\right)+ab+bc+ca}{a^2+b^2+c^2}\)

Cần chứng minh \(\frac{2\left(a^2+b^2+c^2\right)+ab+bc+ca}{a^2+b^2+c^2}\ge\frac{3}{2}\)

\(\Leftrightarrow\left(a+b+c\right)^2\ge0\) *luôn đúng*

Áp dụng bất đẳng thức \(\dfrac{1}{a+b}\le\dfrac{1}{4}\left(\dfrac{1}{a}+\dfrac{1}{b}\right)\forall a,b>0\)

\(\Rightarrow\left\{{}\begin{matrix}\dfrac{a}{2a+b+c}=\dfrac{a}{a+b+c+a}\le\dfrac{a}{4}\left(\dfrac{1}{a+b}+\dfrac{1}{c+a}\right)\\\dfrac{b}{a+2b+c}=\dfrac{b}{a+b+b+c}\le\dfrac{b}{4}\left(\dfrac{1}{a+b}+\dfrac{1}{b+c}\right)\\\dfrac{c}{a+b+2c}=\dfrac{c}{a+c+b+c}\le\dfrac{c}{4}\left(\dfrac{1}{a+c}+\dfrac{1}{b+c}\right)\end{matrix}\right.\)

\(\Rightarrow VT\le\dfrac{a}{4}\left(\dfrac{1}{a+b}+\dfrac{1}{a+c}\right)+\dfrac{b}{4}\left(\dfrac{1}{a+b}+\dfrac{1}{b+c}\right)+\dfrac{c}{4}\left(\dfrac{1}{a+c}+\dfrac{1}{b+c}\right)\)

\(\Rightarrow VT\le\dfrac{a}{4\left(a+b\right)}+\dfrac{a}{4\left(a+c\right)}+\dfrac{b}{4\left(a+b\right)}+\dfrac{b}{4\left(b+c\right)}+\dfrac{c}{4\left(a+c\right)}+\dfrac{c}{4\left(b+c\right)}\)

\(\Rightarrow VT\le\left[\dfrac{a}{4\left(a+b\right)}+\dfrac{b}{4\left(a+b\right)}\right]+\left[\dfrac{b}{4\left(b+c\right)}+\dfrac{c}{4\left(b+c\right)}\right]+\left[\dfrac{c}{4\left(a+c\right)}+\dfrac{a}{4\left(a+c\right)}\right]\)

\(\Rightarrow VT\le\dfrac{a+b}{4\left(a+b\right)}+\dfrac{b+c}{4\left(b+c\right)}+\dfrac{c+a}{4\left(c+a\right)}\)

\(\Rightarrow VT\le\dfrac{1}{4}+\dfrac{1}{4}+\dfrac{1}{4}=\dfrac{3}{4}\)

\(\Leftrightarrow\dfrac{a}{2a+b+c}+\dfrac{b}{a+2b+c}+\dfrac{c}{a+b+2c}\le\dfrac{3}{4}\) ( đpcm )

Dấu "=" xảy ra khi \(a=b=c\)

Bạn ơi BĐT kia có tên gì ko?